A model for migratory B cell oscillations from receptor down-regulation induced by external chemokine fields

Cliburn Chan1, Matthew Billard, Samuel A Ramirez

  • 1Department of Biostatistics and Bioinformatics, Duke University Medical Center, Durham, NC 27705, USA. cliburn.chan@duke.edu

Insights

B cell migration in germinal centers is crucial for immune responses. This study models B cell movement using differential equations, revealing that receptor feedback can spontaneously generate complex migration patterns without external signals.

Area of Science:

  • Immunology
  • Computational Biology
  • Biophysics

Background:

  • Somatic hypermutation and affinity maturation in B cells depend on germinal center (GC) dark and light zone cycling.
  • B cell migration within lymph nodes is complex, influenced by chemokines and G-protein coupled receptors.
  • Existing models often simplify spatial chemokine distributions, limiting understanding of B cell redistribution.

Purpose of the Study:

  • To develop and analyze an ordinary differential equation (ODE) model of B cell migration incorporating explicit chemokine spatial distributions.
  • To investigate the mechanisms driving B cell motility patterns observed in lymph node germinal centers.
  • To explore how simple feedback mechanisms can generate complex B cell migration dynamics.

Main Methods:

  • Developed an ODE model for B cell population dynamics that explicitly includes chemokine spatial distributions.
  • Analyzed the model's dynamics to identify emergent migration patterns.
  • Compared model predictions with experimental observations from two-photon microscopy and individual-based simulations.

Main Results:

  • The model demonstrates that B cell redistribution is driven by chemokine gradients.
  • Feedback from receptor down-regulation, induced by chemokine fields, can generate spontaneous interzonal and intrazonal oscillations in B cell migration.
  • These oscillations can occur even without extrinsic regulation, offering a novel hypothesis for observed B cell motility.

Conclusions:

  • Spatial chemokine distributions are critical for understanding B cell migration patterns in germinal centers.
  • Simple feedback mechanisms, such as receptor down-regulation, can be sufficient to generate complex B cell migration dynamics.
  • The proposed ODE model provides a tractable framework for studying B cell motility and offers an alternative hypothesis for emergent migration patterns.

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